Literature DB >> 20421597

An mre11 mutation that promotes telomere recombination and an efficient bypass of senescence.

Immanual S Joseph1, Alpana Kumari, Mrinal K Bhattacharyya, Honghai Gao, Bibo Li, Arthur J Lustig.   

Abstract

Preventing the formation of dysfunctional telomeres is essential for genomic stability. In most organisms, the ribo-nucleoprotein reverse transcriptase telomerase is responsible for telomere GT-strand elongation. However, in telomerase-negative cells, low-frequency recombination mechanisms can avert lethality by elongating critically short telomeres. This study focuses on the involvement of the budding yeast Mre11 in telomere recombination and homeostasis. We have identified a novel allele of MRE11, mre11-A470T, that, in telomerase-positive cells, confers a semidominant decrease in telomere size and a recessive defect in telomere healing. In addition, mutant cells lack normal telomere size homeostasis. Telomerase-negative mre11-A470T cells display a Rad51-dependent bypass of replicative senescence via induction of a highly efficient type I-related recombination pathway termed type IA. The type IA pathway involves an amplification of subtelomeric Y' elements, coupled with elongated and more heterogeneous telomere tracts relative to the short telomere size of type I survivors. The data have led us to propose the involvement of break-induced replication in telomere expansion. The differing phenotypes elicited by the mre11-A470T mutants in telomerase-positive and telomerase-negative cells have also led us to speculate that the telomere end structure may be modified differentially in mre11-A470T cells, directing the telomere into specific pathways.

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Year:  2010        PMID: 20421597      PMCID: PMC2907200          DOI: 10.1534/genetics.110.117598

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  55 in total

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  10 in total

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Review 3.  Towards the Mechanism of Yeast Telomere Dynamics.

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Journal:  Eukaryot Cell       Date:  2011-06-10

5.  The mre11A470T mutation and homeologous interactions increase error-prone BIR.

Authors:  In-Joon Baek; Courtney Parke; Arthur J Lustig
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8.  Telomerase-null survivor screening identifies novel telomere recombination regulators.

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9.  The Ctf18RFC clamp loader is essential for telomere stability in telomerase-negative and mre11 mutant alleles.

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10.  The mre11 A470 alleles influence the hereditability and the segregation of telosomes in Saccharomyces cerevisiae.

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  10 in total

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